OVERVIEW
[0001] Aspects of various embodiments are directed to generation and communication of signals
including data configured in accordance with different protocols. Various communications
protocols are utilized for communicating different types of wireless signals. In some
instances, stations, receivers or other circuitry may coexist in a common environment,
and may attempt to utilize common channels. Spectrum sharing can be necessary, yet
spectrum space may be scarce and desirably used by several standards. For instance,
available bandwidth may be allocated in chunks to particular standards, which may
limit use by other standards. Such standards may include, for example, Vehicle-to-Everything
(V2X), Cellular-V2X (C-V2X), Wi-Fi, and others. These and other matters have presented
challenges to efficiencies and implementations of wireless communications, for a variety
of applications.
From
US 2020/0008026 A1 wireless vehicular communications according to vehicular communications protocols
using reservation times are known.
From
US 2017/0257201 A1 apparatus and method for transmitting single channel, bonded channel, and MIMO OFDM
frames with fields to facilitate AGC, timing, and channel estimation are known.
SUMMARY
[0002] Various example embodiments are directed to issues such as those addressed above
and/or others which may become apparent from the following disclosure concerning the
communication of signals on a common channel utilized by receivers operating on different
protocols. Such aspects may include generating and communicating signals including
data configured in accordance with each of the different protocols.
[0003] In certain example embodiments, aspects of the present disclosure involve inserting
a data set of a first protocol into a signal of the second protocol as may be intended
for receivers of the second protocol. This may facilitate receipt of the communication
at receivers of the first protocol and communication therewith (e.g., instructing
to vacate the channel). Such an approach may involve inserting a Wi-Fi-based data
into a C-V2X message.
[0004] A specific example embodiment is directed to an apparatus as defined in claim 1.
[0005] Another specific example embodiment is directed to a method as defined in claim 8.
[0006] The above discussion/summary is not intended to describe each embodiment or every
implementation of the present disclosure. The figures and detailed description that
follow also exemplify various embodiments.
BRIEF DESCRIPTION OF FIGURES
[0007] Various example embodiments may be more completely understood in consideration of
the following detailed description in connection with the accompanying drawings, in
which:
FIG. 1 shows a system and apparatuses for communicating in an environment involving
receivers operating on disparate protocols, in accordance with the present disclosure;
FIG. 2 is shows an LTE Sidelink transmitter (TX), as may be implemented in accordance
with the present disclosure;
FIG. 3 shows LTE-V2X subframe organization, as may be implemented in accordance with
the present disclosure;
FIG. 4 shows an LTE-V2X subframe view, as may be implemented in accordance with the
present disclosure; and
FIG. 5 shows a multiple-user LTE-V2X subframe view, as may be implemented in accordance
with the present disclosure.
[0008] While various embodiments discussed herein are amenable to modifications and alternative
forms, aspects thereof have been shown by way of example in the drawings and will
be described in detail. It should be understood, however, that the intention is not
to limit the disclosure to the particular embodiments described. In addition, the
term "example" as used throughout this application is only by way of illustration,
and not limitation.
DETAILED DESCRIPTION
[0009] Aspects of the present disclosure are believed to be applicable to a variety of different
types of apparatuses, systems and methods involving the communication of different
types of signals in a common channel. In certain implementations, aspects of the present
disclosure have been shown to be beneficial when used in the context of V2X communications
(such as Cellular -V2X communications (C-V2X)) with a spectrum shared with Wi-Fi communications.
In some embodiments, a communication station may insert a Wi-Fi data set into a C-V2X
communication to facilitate receipt of the communication by Wi-Fi receivers, while
providing the bulk of the communication as a C-V2X communication to C-V2X receivers.
This may further facilitate instructing the Wi-Fi receivers to vacate the channel
for what may be higher-priority C-V2X communications. As such, various aspects of
the disclosure address C-V2X detection by an IEEE802.11 device, via insertion of a
decodable DSRC (dedicated short-range communications) data set within C-V2X communications.
While not necessarily so limited, various aspects may be appreciated through the following
discussion of non-limiting examples which use exemplary contexts.
[0010] Accordingly, in the following description various specific details are set forth
to describe specific examples presented herein. It should be apparent to one skilled
in the art, however, that one or more other examples and/or variations of these examples
may be practiced without all the specific details given below. In other instances,
well known features have not been described in detail so as not to obscure the description
of the examples herein. For ease of illustration, the same reference numerals may
be used in different diagrams to refer to the same elements or additional instances
of the same element. Also, although aspects and features may in some cases be described
in individual figures, it will be appreciated that features from one figure or embodiment
can be combined with features of another figure or embodiment even though the combination
is not explicitly shown or explicitly described as a combination.
[0011] As used herein, the term or "data set" for a particular protocol in the context of
insertion thereof into a communication utilizing another protocol (e.g., C-V2X) refers
to data that enables receivers of the particular protocol to receive and decode that
data set. A remaining portion of the communication may be utilized for the other protocol.
For instance, a Wi-Fi data set may be inserted into a C-V2X communication and include
sufficient information for a Wi-Fi receiver that, when decoded, may instruct the Wi-Fi
receiver to vacate the channel. In some contexts, this data set may thus operate as
a channel reservation token or token, which acts to cause receivers of that protocol
to vacate or reserve the channel for the other protocol. Such a channel reservation
token may be a full or partial message containing sufficient information encoded in
a first protocol such that systems using the first protocol infer characteristics
of systems using a second protocol, and take appropriate actions (e.g. vacate the
channel for a predetermined time duration). In a more specific example embodiment,
in case the first protocol is IEEE802.11p and the second protocol is C-V2X, the token
(or data set) may comprise IEEE 802.11p preamble (L-STF and L-LTF) and a Signal Field
(L-SIG) sections, followed or not by a partial or full L-DATA section, followed or
not by padding to fill a complete OFDM symbol worth of time. In another more specific
example embodiment, such a data set, or token, acts as a channel reservation message
for stations transmitting messages. The reservation information can be encoded using
a Signal Field duration (e.g., forcing the stations pertaining to a first protocol
to stay in receive mode for a predefined time duration, such as 10ms), or by setting
specific fields in the MAC header (e.g., setting the IEEE 802.11 OCB (Outside the
Context of a Basic Service Set identifier) flag (dot110CBActivated)).
[0012] Various aspects of the disclosure are directed to modifying signals of a protocol
such as a C-V2X messages waveform, so that it includes a data set of another protocol
such as an IEEE 802.11p/bd data set. When implemented, the included data set can be
recognized by Wi-Fi devices as a valid V2X communication, for example due to the OCB
field content. Such Wi-Fi device may thus take action upon its reception. The inserted
data set may be relatively short, for instance such that it occupies less than 1 or
2 OFDM symbols worth of time, facilitating CV2X receiver performance. Further, such
a CV2X receiver need not necessarily include IEEE 802.11 capabilities (
e.g., as relating to the IEEE 802.11 standard, including releases up to and including
IEEE 802.11-2020).
[0013] As noted herein, the term C-V2X refers to LTE-V2X (long-term evolution V2X) and/or
5G NR V2X (fifth generation new radio V2X). However, the various approaches herein
may be implemented similarly with other respective protocols, inserting a data set
from one protocol into another to facilitate compatibility.
[0014] In some embodiments, the inserted data set is safely positioned within the 1st OFDM
symbol of C-V2X messages, where the 1st symbol is not mandatory for proper reception
by C-V2X receivers, which may be used for AGC calibration and settling purposes. As
such, C-V2X communications are mostly unaffected. In other embodiments, the inserted
data set overlaps the last OFDM symbol of a previous subframe and the first symbol
of the subframe, where the last OFDM symbol of a subframe is otherwise empty. Where
implemented with LTE-V2X OFDM symbols, the inserted data set may occupy about half
of the 1
st of such symbols. These approaches thus may, for example, operate for communication
with C-V2X devices such as modems that do not otherwise support for IEEE802.11p/bd
detection. The inserted data set may be viewed as a LUT (lookup table) sequence that
is patching regular C-V2X symbols obtained after encoding.
[0015] In some instances, the inserted data set can be prerecorded such that no additional
computational effort is necessary. The inserted data set can be delivered to an upconverter
by the same digital to analog converter as an LTE signal. The use of fixed prerecorded
data set may facilitate use by several LTE-V2X users of the same subframe (e.g., frequency
division multiplex), such that each transmit the same inserted data set information
and therefore do not interfere with each other. In certain embodiments, a communication
sequence as noted herein can be resampled offline to C-V2X rates to reduce/minimize
DSP (digital signal processing) effort.
[0016] Various such aspects of the disclosure may further facilitate communications using
disparate protocols such as C-V2X and IEEE802.11-based protocols, and related devices
that are not equipped to decode headers of one or the other protocol. For instance,
such protocols may utilize disparate sampling rates, or disparate network types such
as asynchronous and synchronous networks.
[0017] Another embodiment is directed to an apparatus including communication circuitry
and logic circuitry. The communication circuitry communicates signals according to
a first protocol over a wireless channel, and operates with the logic circuitry to
generate and communicate (e.g., in a single transmission) a set of signals including
data configured in accordance with first and second protocols. Specifically, the set
of signals are communicated over the wireless channel using the data corresponding
to the first protocol for communicating with receivers operating in accordance with
the first protocol, and use the data corresponding to the second protocol to communicate
with receivers operating in accordance with the second protocol. This approach is
effected to modify a signal by inserting a data set of the first protocol into a signal
of the second protocol intended for reception by receivers of the second protocol.
Accordingly, receivers of the first protocol may receive and process the inserted
data set, thus facilitating operation of both receivers in a common channel. Further,
the inserted data set are used to instruct receivers of the first protocol, such as
to vacate the channel for higher priority communications of the second protocol.
[0018] In a specific implementation, the logic circuitry operates with the communication
circuitry to communicate the set of signals by communicating C-V2X signals on the
wireless channel using a C-V2X protocol with a valid a Wi-Fi data set. The Wi-Fi data
set is utilized to facilitate communication of the set of signals on the wireless
channel using a Wi-Fi signal protocol and to render a portion of the set of signals
including the Wi-Fi data set decodable by receivers operating on the Wi-Fi signal
protocol. For instance, a Wi-Fi data set may be inserted into a C-V2X signal such
that Wi-Fi stations can receive and process the Wi-Fi portion. If desired, the Wi-Fi
portion may be used to instruct Wi-Fi stations, such as to vacate the channel. For
instance, if the Wi-Fi data set is a V2X data set, the receivers using the first protocol
may respond by vacating the channel.
[0019] In some implementations, the logic circuitry may operate with the communication circuitry
in respective modes, as noted above an in another mode in which signals are communicated
with communication stations over a different communication channel utilizing the second
protocol alone (without insertion of data corresponding to the first protocol).
[0020] The logic circuitry and communication circuitry includes, in communications using
the second protocol, a data set configured in accordance with the first protocol.
The data set includes information allowing receiver circuitry, which is configured
to decode signals of the first protocol and unable to decode signals of the second
protocol, to decode the data set configured in accordance with the first protocol
and operate in accordance therewith. Such a data set may include information that
directs the receiver circuitry to defer channel use to communications including data
configured in accordance with the second protocol.
[0021] In some implementations, the logic circuitry generates a set of signals including
data configured in accordance with the first protocol by retrieving a stored version
of the data configured in accordance with the first protocol. This approach may be
utilized for including the stored version of the data in multiple such communications.
In some instances, versions of the same stored data are utilized by multiple communication
circuits in a common environment.
[0022] In accordance with a method-based embodiment, a set of signals is generated to include
data configured in accordance with a first protocol and data configured in accordance
with a second protocol. The set of signals is communicated over a wireless channel,
using the data corresponding to the first protocol to communicate with receivers operating
in accordance with the first protocol, and using the data corresponding to the second
protocol to communicate with receivers operating in accordance with the second protocol
(
e.g., in a single transmission). For instance, signals that are to be communicated using
the second protocol are modified to include a communication data set in accordance
with the first protocol. This approach may thus facilitate communications of data
corresponding to the second protocol with receivers operating using the second protocol,
while maintaining compatibility of the same communication for communicating with receivers
operating using the second protocol. In some instances, information of the first protocol
that instructs receivers operating in accordance with the first protocol to vacate
the channel is communicated as part of the set of signals, therein providing access
to the channel for communicating the data corresponding to the second protocol
[0023] Certain approaches may involve communicating C-V2X signals on a wireless channel
using a C-V2X protocol with a valid a Wi-Fi data set. The Wi-Fi data set is utilized
to facilitate communication of the set of signals on the wireless channel using a
Wi-Fi signal protocol and to render a portion of the set of signals including the
Wi-Fi data set decodable by receivers operating on the Wi-Fi signal protocol. The
Wi-Fi data set may, for example, instruct Wi-Fi receivers to release the channel for
a predefined amount of time for use by C-V2X communications.
[0024] In some instances, a particular transmitter may further communicate a set of signals
consisting of data configured in accordance with the second protocol over a different
communication channel, for communicating with receivers operating in accordance with
the second protocol. Such an approach may facilitate communications in different environments
that don't include stations configured to communicate with the first protocol.
[0025] In a particular embodiment, a data set configured in accordance with the first protocol
is added to a communication configured in accordance with the second protocol. Such
a data set may include information allowing receiver circuitry, which is configured
to decode signals of the first protocol and unable to decode signals of the second
protocol, to decode the data set configured in accordance with the first protocol
and operate in accordance therewith. Further, the data set configured in accordance
with the first protocol may include information that directs receivers operating in
accordance with the first protocol to defer channel use to communications including
data configured in accordance with the second protocol.
[0026] Turning now to the figures, Figure 1 shows a system and apparatuses for communicating
in an environment involving receivers operating on disparate protocols. A C-V2X communication
cluster (denoted as tech-2) may include apparatuses 110, 120 and 130 shown by way
of example as being located within respective vehicles. Each apparatus may include
circuitry for effecting C-V2X communications, with apparatus 110 shown by way of example
as having communication circuitry 111 and logic circuitry 112. Accordingly, C-V2X
communications can be implemented in a shared bandwidth region as shown in 102, with
a Wi-Fi portion thereof utilized with C-V2X by way of inclusion of a Wi-Fi data set
as noted herein. One or more of these apparatuses may operation to communicate in
accordance with one or more embodiments characterized herein.
[0027] This cluster communicates in an environment that also includes a Wi-Fi communications
device 140 (denoted as tech-1), which may act as interference if not mitigated. Accordingly,
and referring to apparatus 110 by way of example, logic circuitry 112 inserts a Wi-Fi
data set into a C-V2X communication, which is received by Wi-Fi communications device
140. As denoted at 3, the Wi-Fi data set may include an adapted alert message that
causes the Wi-Fi device 140 to vacate the channel as denoted at 4. The same C-V2X
communication can be made to the other apparatuses 120 and 130, which process the
communications as denoted herein. For instance, where the Wi-Fi data set is included
in a first symbol, the apparatuses 120 and 130 may process the C-V2X communication
as otherwise normal. Data
[0028] Figure 2 shows an LTE Sidelink transmitter (TX) 200, as may be implemented in accordance
with one or more embodiments. The transmitter 200 includes control channel encoding
block 210 and data channel encoding block 212, which are combined at 222 within an
inverse fast-Fourier transform (IFFT) block 220, the output of which is passed to
a DAC 230, power amplifier 240 and antenna 250 for transmission. Block 260 provides
DRMS pilots (OFDM symbols) to 222, and block 270 provides a prerecorded sequence for
an IEEE 802.11 data set to be inserted into C-V2X communications, at or prior to the
DAC 230. For instance, block 270 may utilize a look-up-table (LUT) for storing such
a prerecorded sequence.
[0029] Figure 3 shows LTE-V2X subframe organization, with 14 OFDM symbols forming 1 subframe
of 1 ms, as may be implemented in accordance with one or more embodiments. Notably,
the approach shown in Figure 3 may be implemented in the context of other communication
types such as 5G-NR-V2X. The first symbol of messages sent via the LTE-V2X approach
is modified to include a Wi-Fi data set, as may be implemented in accordance with
one or more embodiments herein. This approach may leverage 3GPP V2X synchronous systems,
such that users may be assumed to be synchronized on a common reference timing (e.g.,
GNSS).
[0030] The LTE-V2X messages last for 1 subframe (1ms), meaning that from one subframe to
the next subframe, there may be a different set of users, and a different received
power energy. The receiver(s) adapt their AGC to avoid ADC saturation at each beginning
of subframes. The 1st OFDM symbol may be one that is not made available for channel
decoding at the receiver (e.g., as it might be lost in AGC calibration purposes),
and may be used to teach receivers about the amplitude of the signal to come (subsequent
OFDM symbols). As such, the content of the 1
st OFDM symbol may be modified in accordance with one or more embodiments, for instance
such that it has the same amplitude as the subsequent OFDM symbol of the subframe.
[0031] The 1st OFDM symbol can be modified to hold an IEEE 802.11p data set at its beginning,
that would be read and understood by the IEEE 802.11p users. The IEEE 802.11p data
set may contain sections as follows:
- 1) L-SFT: "legacy short training field". Provides support of synchronization & AGC
calibration. 16 µs;
- 2) L-LTF: "legacy long training field": provides channel estimation pilot for decoding
the subsequent IEEE 802.11-OFDM symbols. 16 µs; and
- 3) SIG: the signal field OFDM symbol that conveys 2 important information: the MCS
& the data set duration of the following IEEE 802.11p OFDM symbols. 8 µs.
- 4) DATA: this section may be either omitted, partially or fully transmitted. This
section may provide information such as the MAC header which may convey the 802.11
OCB (Outside the Context of a Basic Service Set identifier) flag (dot11OCBActivated)
- 5) padding: this section may be either omitted, partially or fully transmitted. The
padding may be made out of energy signals or WGN noise, and can be either be band-limited
to the subsequent LTE symbols (ex: a few subchannels), or follow the bandwidth of
the 'channel reservation token (8.125 MHz).
[0032] Information that is meaningful for WiFi stations to understand this data set as a
valid V2X data set may be located in the MAC header, which is positioned at the beginning
of the MAC header. As such, the amount of data symbols to be transmitted may be rather
low, such as 2 to 3 OFDM symbols with QPSK 1/2, conveying ~29-33 bytes, and enough
to convey the IEEE 802.11 OCB (Outside the Context of a Basic Service Set identifier)
flag (dot11OCBActivated) that is located in the Management information base (MIB).
This may lead to a duration of X = 16-24 µ sec.
[0033] The duration X can take many values depending on the MCS chosen, the channel bandwidth,
and the last symbol of the previous subframe can also be partly used, and "padding"
fills the remainder of the LTE OFDM worth of time (72 usec) by WGN noise. That part
of the 1st OFDM symbol can either be band-limited to the subsequent LTE symbols (e.g.,
a few subchannels), or follow the bandwidth of an inserted just before.
[0034] Figure 4 shows an LTE-V2X subframe view, with an inserted IEEE 802.11 data set 410
in place of the 1st OFDM symbol (Sym 0). The IEEE 802.11p data set is used by the
LTE-V2X users to send a signal towards the WiFi stations, such as "this channel is
in-use for V2X, please vacate." With this data set, LTE-V2X may make a reservation
of the channel for LTE-V2X purposes. Such an inserted data set may be sent by all
LTE-V2X users. Receivers of these messages receive a plurality of the same message,
therefore being able to decode it successfully. The IEEE 802.11p data set may be formed
as a regular message for a 10 MHz channel, being 8.125 MHz wide, while the rest of
the subframe may follow the LTE-V2X frequency allocation.
[0035] Figure 5 shows a multiple-user LTE-V2X subframe view, as may be implemented in accordance
with one or more embodiments. The subframe view is depicted from the perspective of
three transmitter LTE stations at 501, 502 and 503, and an LTE receiver station at
504. The transit power (in dBm) of an inserted packed as noted herein may be identical
to the transmit power of a (valid) subsequent LTE OFSM symbol. The transit power (in
dBm) of the padding may also be identical to the transmit power of the rest of the
message. Since the LTE-V2X is a synchronous and multiple users access scheme network,
the LTE-V2X stations have stringent synchronization requirements (e.g., in the range
of 0.1 PPM). Thus, the messages 501, 502 and 503 originating from different LTE-V2X
stations may be sent with very high time-accuracy. Since the IEEE 802.11p part of
the LTE-V2X message is a predefined sequence known by all LTE-V2X transmitters, the
LTE-V2X stations will be sending the exact same copy of IEEE 802.11p part and the
data set, and thus the multiple copies will be adding up constructively from the receiver
perspective. Thus, the case of multiple ITS-G5 headers being sent in the same subframe
can be viewed as an SFN (Single Frequency Network) situation (like transmission of
MBSFN in LTE, or DVB-T for example).
[0036] In case the C-V2X stations are not loading the IEEE 802.11p data set from a prerecorded
memory, a predefined scrambling seed is used for encoding of the IEEE 802.11p DATA
section, to ensure the multiple copies will be adding up constructively from the receiver
perspective.
[0037] Disclosed herein is A method comprising: generating a set of signals including data
configured in accordance with a first protocol and data configured in accordance with
a second protocol; and communicating the set of signals over a wireless channel, including
using the data corresponding to the first protocol to communicate with receivers operating
in accordance with the first protocol, and using the data corresponding to the second
protocol to communicate with receivers operating in accordance with the second protocol
[0038] In one or more embodiments, generating the set of signals includes modifying signals
that are to be communicated using the second protocol to include a communication data
set in accordance with the first protocol.
[0039] In one or more embodiments, wherein generating the set of signals includes adding,
to a communication configured in accordance with the second protocol, a data set configured
in accordance with the first protocol, the data set including information allowing
receiver circuitry, which is configured to decode signals of the first protocol and
unable to decode signals of the second protocol, to decode the data set configured
in accordance with the first protocol and operate in accordance therewith.
[0040] In one or more embodiments, generating the set of signals includes inserting, in
the data set configured in accordance with the first protocol, information that directs
receivers operating in accordance with the first protocol to defer channel use to
communications including data configured in accordance with the second protocol.
[0041] In one or more embodiments, generating the set of signals includes retrieving a stored
version of the data configured in accordance with the first protocol and inserting
that stored version into signals configured in accordance with the second protocol.
[0042] In one or more embodiments, the steps of generating and communicating are carried
out within logic circuitry and communication circuitry, the logic circuitry providing
data for the set of signals by inserting a data set of data configured in accordance
with the first protocol into a set of data sets of data configured in accordance with
the second protocol.
[0043] As noted above, an IEEE 802.11p data set may be inserted in the last OFDM symbol
of the previous subframe and in 1st OFDM symbol of LTE-V2X. In the event of the inserted
data set duration being larger than 1 OFDM symbol worth of time, it may be extended
by starting it earlier.
[0044] As examples, the Specification describes and/or illustrates aspects useful for implementing
the claimed disclosure by way of various circuits or circuitry which may be illustrated
as or using terms such as blocks, modules, device, system, unit, controller, logic
circuit, communications circuitry, receiver, transmitter and/or other circuit-type
depictions
(e.g., reference numerals 110, 120 and 130 of Figure 1 and 210, 212, 220, 230, 240, 250,
260 and 270 may depict a block/module as described herein). Such circuits or circuitry
may be used together with other elements to exemplify how certain embodiments may
be carried out in the form or structures, steps, functions, operations, activities,
etc. As examples, wherein such circuits or circuitry may correspond to logic circuitry
(which may refer to or include a code-programmed/configured CPU), in one example the
logic circuitry may carry out a process or method (sometimes "algorithm") by performing
signal generation and effecting communication thereof (e.g., by operating with communication
circuitry). Such logic circuitry may carry out a process or method by performing these
same activities/operations (e.g., and/or as in the claims).
[0045] For example, in certain of the above-discussed embodiments, one or more modules are
discrete logic circuits or programmable logic circuits configured and arranged for
implementing these operations/activities, as may be carried out in the approaches
shown in Figs. 1-6. In certain embodiments, such a programmable circuit is one or
more computer circuits, including memory circuitry for storing and accessing a program
to be executed as a set (or sets) of instructions (and/or to be used as configuration
data to define how the programmable circuit is to perform), and an algorithm or process
as described above is used by the programmable circuit to perform the related steps,
functions, operations, activities,
etc. Depending on the application, the instructions (and/or configuration data) can be
configured for implementation in logic circuitry, with the instructions (whether characterized
in the form of object code, firmware or software) stored in and accessible from a
memory (circuit). As another example, where the Specification may make reference to
a "first" protocol and a "second" protocol, the adjectives "first" and "second" are
not used to connote any description of any related structure or to provide any substantive
meaning; rather, such adjectives are merely used for English-language antecedence
to differentiate one such similarly-named aspects.
[0046] Based upon the above discussion and illustrations, those skilled in the art will
readily recognize that various modifications and changes may be made to the various
embodiments without strictly following the exemplary embodiments and applications
illustrated and described herein. For example, methods as exemplified in the Figures
may involve steps carried out in various orders, with one or more aspects of the embodiments
herein retained, or may involve fewer or more steps. Further, a variety of types of
communications may be effected with respective communication protocols in which a
data set (or other data portion) of a first protocol is inserted in to communications
of a second protocol for ensuring communications with receivers of the first protocol.
Such modifications do not depart from the scope of various aspects of the disclosure,
including aspects set forth in the claims.
1. An apparatus (110, 120, 130) comprising:
communication circuitry (111) configured to communicate signals according to a first
protocol, over a wireless channel;
logic circuitry (112) configured and arranged with the communication circuitry (111)
to:
generate a set of signals including data configured in accordance with the first protocol
and including data configured in accordance with a second protocol,
wherein generating the set of signals comprises modifying signals to be communicated
using the second protocol to include a communication data set in accordance with the
first protocol;
wherein generating the set of signals including data configured in accordance with
the first protocol comprises
(i) retrieving a stored version of the data configured in accordance with the first
protocol, or
(ii) using a predefined scrambling seed for encoding the communication data set of
the first protocol; and
wherein generating the set of signals further comprises inserting the data configured
in accordance with the first protocol (i) in the last OFDM symbol of a previous subframe
and (ii) in the first OFDM symbol of a subframe of the data configured in accordance
with the second protocol;
communicate the set of signals over the wireless channel using the data configured
in accordance with the first protocol for communicating with receivers operating in
accordance with the first protocol and using the data configured in accordance with
the second protocol to communicate with receivers operating in accordance with the
second protocol.
2. The apparatus of claim 1, wherein the logic circuitry (112) is configured and arranged
with the communication circuitry (111) to communicate the set of signals by communicating
C-V2X signals on the wireless channel using a C-V2X protocol with a valid Wi-Fi data
set, utilizing the Wi-Fi data set to facilitate communication of the set of signals
on the wireless channel using a Wi-Fi signal protocol and to render a portion of the
set of signals including the Wi-Fi data set decodable by receivers operating on the
Wi-Fi signal protocol.
3. The apparatus (110, 120, 130) of any preceding claim, wherein the data configured
in accordance with the first protocol includes information that instructs the receivers
using the first protocol to vacate the channel, therein providing access to the channel
for communicating the data configured in accordance with the second protocol.
4. The apparatus (110, 120, 130) of any preceding claim, wherein the logic circuitry
(112) is configured and arranged with the communication circuitry (111) to communicate
the data configured in accordance with the first protocol and the data configured
in accordance with the second protocol in a single transmission.
5. The apparatus (110, 120, 130) of any preceding claim, wherein the logic circuitry
(112) is configured and arranged with the communication circuitry (111) to communicate
the set of signals to communication stations over a different communication channel
and utilizing the second protocol, without utilizing data configured in accordance
with the first protocol.
6. The apparatus (110, 120, 130) of any preceding claim, wherein the logic circuitry
(112) is configured and arranged with the communication circuitry (111) to include,
in communications using the second protocol, a data set configured in accordance with
the first protocol, the data set including information allowing receiver circuitry,
which is configured to decode signals of the first protocol and unable to decode signals
of the second protocol, to decode the data set configured in accordance with the first
protocol and operate in accordance therewith.
7. The apparatus (110, 120, 130) of claim 6, wherein the logic circuitry (112) is configured
to include, in the data set configured in accordance with the first protocol, information
that directs the receiver circuitry to defer channel use to communications including
data configured in accordance with the second protocol.
8. A method comprising:
generating a set of signals including data configured in accordance with a first protocol
and data configured in accordance with a second protocol; wherein
the set of signals is generated by modifying signals to be communicated using the
second protocol to include a communication data set in accordance with the first protocol;
wherein the set of signals is generated including data configured in accordance with
the first protocol by (i) retrieving a stored version of the data configured in accordance
with the first protocol; or (ii) using a predefined scrambling seed for encoding the
communication data set of the first protocol; wherein
the set of signals is generated by inserting the data configured in accordance with
the first protocol (i) in the last OFDM symbol of a previous subframe and (ii) in
the first OFDM symbol of a subframe of the data configured in accordance with the
second protocol; and
communicating the set of signals over a wireless channel includes using the data configured
in accordance with the first protocol to communicate with receivers operating in accordance
with the first protocol, and using the data configured in accordance with the second
protocol to communicate with receivers operating in accordance with the second protocol.
9. The method of claim 8, wherein communicating the set of signals includes communicating
C-V2X signals on the wireless channel using a C-V2X protocol with a valid a Wi-Fi
data set, utilizing the Wi-Fi data set to facilitate communication of the set of signals
on the wireless channel using a Wi-Fi signal protocol and to render a portion of the
set of signals including the Wi-Fi data set decodable by receivers operating on the
Wi-Fi signal protocol.
10. The method of claim 8 or 9, wherein communicating the set of signals includes communicating
information of the first protocol that instructs the receivers operating in accordance
with the first protocol to vacate the wireless channel, therein providing access to
the channel for communicating the data configured in accordance with the second protocol.
11. The method of any of claims 8 to 10, wherein communicating the set of signals includes
communicating the data configured in accordance with the first protocol and the data
configured in accordance with the second protocol in a single transmission.
12. The method of any of claims 8 to 11 further including communicating a set of signals
consisting of data configured in accordance with the second protocol over a different
communication channel with receivers operating in accordance with the second protocol.
1. Einrichtung (110, 120, 130), die Folgendes umfasst:
eine Kommunikationsschaltungsanordnung (111), die dazu konfiguriert ist, Signale gemäß
einem ersten Protokoll über einen Drahtloskanal zu kommunizieren;
eine Logikschaltungsanordnung (112), die mit der Kommunikationsschaltungsanordnung
(111) konfiguriert und angeordnet ist zum:
Erzeugen eines Satzes von Signalen, die Daten beinhalten, die gemäß dem ersten Protokoll
konfiguriert sind, und Daten beinhalten, die gemäß einem zweiten Protokoll konfiguriert
sind,
wobei das Erzeugen des Satzes von Signalen umfasst, unter Verwendung des zweiten Protokolls
zu kommunizierende Signale derart zu modifizieren, dass sie einen Kommunikationsdatensatz
gemäß dem ersten Protokoll beinhalten;
wobei das Erzeugen des Satzes von Signalen, die Daten beinhalten, die gemäß dem ersten
Protokoll konfiguriert sind, Folgendes umfasst:
(i) Abrufen einer gespeicherten Version der Daten, die gemäß dem ersten Protokoll
konfiguriert sind, oder
(ii) Verwenden eines vordefinierten Verwürfelungsstartwerts zum Codieren des Kommunikationsdatensatzes
des ersten Protokolls; und
wobei das Erzeugen des Satzes von Signalen ferner Einfügen der gemäß dem ersten Protokoll
konfigurierten Daten (i) in das letzte OFDM-Symbol eines vorherigen Subframes und
(ii) in das erste OFDM-Symbol eines Subframes der gemäß dem zweiten Protokoll konfigurierten
Daten umfasst;
Kommunizieren des Satzes von Signalen über den Drahtloskanal unter Verwendung der
gemäß dem ersten Protokoll konfigurierten Daten zum Kommunizieren mit Empfängern,
die gemäß dem ersten Protokoll arbeiten, und unter Verwendung der gemäß dem zweiten
Protokoll konfigurierten Daten zum Kommunizieren mit Empfängern, die gemäß dem zweiten
Protokoll arbeiten.
2. Einrichtung nach Anspruch 1, wobei die Logikschaltungsanordnung (112) mit der Kommunikationsschaltungsanordnung
(111) konfiguriert und angeordnet ist zum Kommunizieren des Satzes von Signalen durch
Kommunizieren von C-V2X-Signalen auf dem Drahtloskanal unter Verwendung eines C-V2X-Protokolls
mit einem gültigen Wi-Fi-Datensatz unter Nutzung des Wi-Fi-Datensatzes, um eine Kommunikation
des Satzes von Signalen auf dem Drahtloskanal unter Verwendung eines Wi-Fi-Signalprotokolls
zu erleichtern und einen Teil des Satzes von Signalen einschließlich des Wi-Fi-Datensatzes
durch gemäß dem Wi-Fi-Signalprotokoll arbeitende Empfänger decodierbar zu machen.
3. Einrichtung (110, 120, 130) nach einem der vorhergehenden Ansprüche, wobei die gemäß
dem ersten Protokoll konfigurierten Daten Informationen beinhalten, die die das erste
Protokoll verwendenden Empfänger dazu anweisen, den Kanal zu verlassen und dadurch
Zugriff auf den Kanal zum Kommunizieren der gemäß dem zweiten Protokoll konfigurierten
Daten bereitzustellen.
4. Einrichtung (110, 120, 130) nach einem der vorhergehenden Ansprüche, wobei die Logikschaltungsanordnung
(112) mit der Kommunikationsschaltungsanordnung (111) konfiguriert und angeordnet
ist zum Kommunizieren der gemäß dem ersten Protokoll konfigurierten Daten und der
gemäß dem zweiten Protokoll konfigurierten Daten in einer einzigen Übertragung.
5. Einrichtung (110, 120, 130) nach einem der vorhergehenden Ansprüche, wobei die Logikschaltungsanordnung
(112) mit der Kommunikationsschaltungsanordnung (111) konfiguriert und angeordnet
ist zum Kommunizieren des Satzes von Signalen über einen anderen Kommunikationskanal
und unter Nutzung des zweiten Protokolls an Kommunikationsstationen, ohne Daten zu
nutzen, die gemäß dem ersten Protokoll konfiguriert sind.
6. Einrichtung (110, 120, 130) nach einem der vorhergehenden Ansprüche, wobei die Logikschaltungsanordnung
(112) mit der Kommunikationsschaltungsanordnung (111) konfiguriert und angeordnet
ist zum Einschließen, in Kommunikationen unter Verwendung des zweiten Protokolls,
eines Datensatzes, der gemäß dem ersten Protokoll konfiguriert ist, wobei der Datensatz
Informationen beinhaltet, die ermöglichen, dass eine Empfängerschaltungsanordnung,
die dazu konfiguriert ist, Signale des ersten Protokolls zu decodieren, und nicht
in der Lage ist, Signale des zweiten Protokolls zu decodieren, den Datensatz decodiert,
der gemäß dem ersten Protokoll konfiguriert ist, und gemäß diesem arbeitet.
7. Einrichtung (110, 120, 130) nach Anspruch 6, wobei die Logikschaltungsanordnung (112)
dazu konfiguriert ist, in dem gemäß dem ersten Protokoll konfigurierten Datensatz
Informationen einzuschließen, die die Empfängerschaltungsanordnung dazu anweisen,
die Kanalverwendung auf Kommunikationen zu verschieben, die Daten beinhalten, die
gemäß dem zweiten Protokoll konfiguriert sind.
8. Verfahren, das Folgendes umfasst:
Erzeugen eines Satzes von Signalen, die Daten, die gemäß einem ersten Protokoll konfiguriert
sind, und Daten, die gemäß einem zweiten Protokoll konfiguriert sind, beinhalten;
wobei
der Satz von Signalen durch derartiges Modifizieren von unter Verwendung des zweiten
Protokolls zu kommunizierenden Signalen erzeugt wird, dass sie einen Kommunikationsdatensatz
gemäß dem ersten Protokoll beinhalten; wobei
der Satz von Signalen einschließlich Daten erzeugt wird, die gemäß dem ersten Protokoll
konfiguriert sind, durch (i) Abrufen einer gespeicherten Version der Daten, die gemäß
dem ersten Protokoll konfiguriert sind;
oder (ii) Verwenden eines vordefinierten Verwürfelungsstartwerts zum Codieren des
Kommunikationsdatensatzes des ersten Protokolls; wobei
der Satz von Signalen durch Einfügen der gemäß dem ersten Protokoll konfigurierten
Daten (i) in das letzte OFDM-Symbol eines vorherigen Subframes und (ii) in das erste
OFDM-Symbol eines Subframes der gemäß dem zweiten Protokoll konfigurierten Daten erzeugt
wird; und
das Kommunizieren des Satzes von Signalen über einen Drahtloskanal Verwenden der gemäß
dem ersten Protokoll konfigurierten Daten zum Kommunizieren mit Empfängern, die gemäß
dem ersten Protokoll arbeiten, und Verwenden der gemäß dem zweiten Protokoll konfigurierten
Daten zum Kommunizieren mit Empfängern, die gemäß dem zweiten Protokoll arbeiten,
beinhaltet.
9. Verfahren nach Anspruch 8, wobei das Kommunizieren des Satzes von Signalen Kommunizieren
von C-V2X-Signalen auf dem Drahtloskanal unter Verwendung eines C-V2X-Protokolls mit
einem gültigen Wi-Fi-Datensatz unter Nutzung des Wi-Fi-Datensatzes, um eine Kommunikation
des Satzes von Signalen auf dem Drahtloskanal unter Verwendung eines Wi-Fi-Signalprotokolls
zu erleichtern und einen Teil des Satzes von Signalen einschließlich des Wi-Fi-Datensatzes
durch gemäß dem Wi-Fi-Signalprotokoll arbeitende Empfänger decodierbar zu machen,
beinhaltet.
10. Verfahren nach Anspruch 8 oder 9, wobei das Kommunizieren des Satzes von Signalen
Kommunizieren von Informationen des ersten Protokolls beinhaltet, die die gemäß dem
ersten Protokoll arbeitenden Empfänger dazu anweisen, den Drahtloskanal zu verlassen
und dadurch Zugriff auf den Kanal zum Kommunizieren der gemäß dem zweiten Protokoll
konfigurierten Daten bereitzustellen.
11. Verfahren nach einem der Ansprüche 8 bis 10, wobei das Kommunizieren des Satzes von
Signalen Kommunizieren der Daten, die gemäß dem ersten Protokoll konfiguriert sind,
und der Daten, die gemäß dem zweiten Protokoll konfiguriert sind, in einer einzigen
Übertragung beinhaltet.
12. Verfahren nach einem der Ansprüche 8 bis 11, das ferner Kommunizieren eines Satzes
von Signalen beinhaltet, die aus Daten bestehen, die gemäß dem zweiten Protokoll konfiguriert
sind, über einen anderen Kommunikationskanal mit Empfängern, die gemäß dem zweiten
Protokoll arbeiten.
1. Appareil (110, 120, 130) comprenant :
des circuits de communication (111) configurés pour communiquer des signaux conformément
à un premier protocole, sur un canal sans fil ;
des circuits logiques (112) configurés et agencés avec les circuits de communication
(111) pour :
générer un ensemble de signaux comportant des données configurées conformément au
premier protocole et comportant des données configurées conformément à un deuxième
protocole,
où la génération de l'ensemble de signaux comprend la modification de signaux à communiquer
au moyen du deuxième protocole pour inclure un ensemble de données de communication
conformément au premier protocole ;
où la génération de l'ensemble de signaux comprenant des données configurées conformément
au premier protocole comprend les étapes suivantes
(i) récupérer une version stockée des données configurées conformément au premier
protocole, ou
(ii) utiliser un germe d'embrouillage prédéfini pour coder l'ensemble de données de
communication du premier protocole ; et
où la génération de l'ensemble de signaux comprend en outre une insertion des données
configurées conformément au premier protocole (i) dans le dernier symbole OFDM d'une
sous-trame précédente et (ii) dans le premier symbole OFDM d'une sous-trame des données
configurées conformément au deuxième protocole ;
communiquer l'ensemble de signaux sur le canal sans fil en utilisant les données configurées
conformément au premier protocole pour communiquer avec des récepteurs fonctionnant
conformément au premier protocole et en utilisant les données configurées conformément
au deuxième protocole pour communiquer avec des récepteurs fonctionnant conformément
au deuxième protocole.
2. Appareil selon la revendication 1, dans lequel les circuits logiques (112) sont configurés
et agencés avec les circuits de communication (111) pour communiquer l'ensemble de
signaux en communiquant des signaux C-V2X sur le canal sans fil en utilisant un protocole
C-V2X avec un ensemble de données Wi-Fi valide, utilisant l'ensemble de données Wi-Fi
pour faciliter la communication de l'ensemble de signaux sur le canal sans fil au
moyen d'un protocole de signal Wi-Fi et pour rendre une partie de l'ensemble de signaux
comprenant l'ensemble de données Wi-Fi décodable par des récepteurs fonctionnant avec
le protocole de signal Wi-Fi.
3. Appareil (110, 120, 130) selon l'une quelconque des revendications précédentes, dans
lequel les données configurées conformément au premier protocole comprennent des informations
qui donnent pour instruction aux récepteurs utilisant le premier protocole de libérer
le canal, fournissant ainsi un accès au canal pour communiquer les données configurées
conformément au deuxième protocole.
4. Appareil (110, 120, 130) selon l'une quelconque des revendications précédentes, dans
lequel les circuits logiques (112) sont configurés et agencés avec les circuits de
communication (111) pour communiquer les données configurées conformément au premier
protocole et les données configurées conformément au deuxième protocole dans une seule
transmission.
5. Appareil (110, 120, 130) selon l'une quelconque des revendications précédentes, dans
lequel les circuits logiques (112) sont configurés et agencés avec les circuits de
communication (111) pour communiquer l'ensemble de signaux à des stations de communication
sur un canal de communication différent et en utilisant le deuxième protocole, sans
utiliser les données configurées conformément au premier protocole.
6. Appareil (110, 120, 130) selon l'une quelconque des revendications précédentes, dans
lequel les circuits logiques (112) sont configurés et agencés avec les circuits de
communication (111) pour inclure, dans les communications utilisant le deuxième protocole,
un ensemble de données configuré conformément au premier protocole, l'ensemble de
données comprenant des informations permettant aux circuits de réception, configurés
pour décoder des signaux du premier protocole et ne pouvant décoder des signaux du
deuxième protocole, de décoder l'ensemble de données configuré conformément au premier
protocole et de fonctionner conformément à celui-ci.
7. Appareil (110, 120, 130) selon la revendication 6, dans lequel les circuits logiques
(112) sont configurés pour inclure, dans l'ensemble de données configuré conformément
au premier protocole, des informations qui donnent pour instruction aux circuits de
réception de différer l'utilisation du canal vers des communications incluant des
données configurées conformément au deuxième protocole.
8. Procédé comprenant les étapes suivantes :
générer un ensemble de signaux comprenant des données configurées conformément à un
premier protocole et des données configurées conformément à un deuxième protocole
; où
l'ensemble de signaux est généré en modifiant les signaux à communiquer au moyen du
deuxième protocole afin d'inclure un ensemble de données de communication conformément
au premier protocole ; où
l'ensemble de signaux est généré en incluant des données configurées conformément
au premier protocole par (i) récupération d'une version stockée des données configurées
conformément au premier protocole ;
ou par (ii) l'utilisation d'un germe d'embrouillage prédéfini pour coder l'ensemble
de données de communication du premier protocole ; où
l'ensemble de signaux est généré par insertion des données configurées conformément
au premier protocole (i) dans le dernier symbole OFDM d'une sous-trame précédente
et (ii) dans le premier symbole OFDM d'une sous-trame des données configurées conformément
au deuxième protocole ; et
la communication de l'ensemble de signaux sur un canal sans fil comprend d'utiliser
les données configurées conformément au premier protocole pour communiquer avec des
récepteurs fonctionnant conformément au premier protocole, et d'utiliser les données
configurées conformément au deuxième protocole pour communiquer avec des récepteurs
fonctionnant conformément au deuxième protocole.
9. Procédé selon la revendication 8, dans lequel la communication de l'ensemble de signaux
comprend la communication de signaux C-V2X sur le canal sans fil en utilisant un protocole
C-V2X avec un ensemble de données Wi-Fi valide, en utilisant l'ensemble de données
Wi-Fi pour faciliter la communication de l'ensemble de signaux sur le canal sans fil
au moyen d'un protocole de signal Wi-Fi et pour rendre une partie de l'ensemble de
signaux comprenant l'ensemble de données Wi-Fi décodable par des récepteurs fonctionnant
sur le protocole de signal Wi-Fi.
10. Procédé selon la revendication 8 ou la revendication 9, dans lequel la communication
de l'ensemble de signaux comprend la communication d'informations du premier protocole
qui donne pour instruction aux récepteurs fonctionnant conformément au premier protocole
de libérer le canal sans fil, fournissant ainsi un accès au canal pour communiquer
les données configurées conformément au deuxième protocole.
11. Procédé selon l'une quelconque des revendications 8 à 10, dans lequel la communication
de l'ensemble de signaux comprend la communication des données configurées conformément
au premier protocole et des données configurées conformément au deuxième protocole
en une seule transmission.
12. Procédé selon l'une quelconque des revendications 8 à 11, comprenant en outre de communiquer
un ensemble de signaux constitués de données configurées conformément au deuxième
protocole sur un canal de communication différent avec des récepteurs fonctionnant
conformément au deuxième protocole.